IGCSE Stoichiometry: Why You Keep Losing Marks on Questions You Actually Know
This is a condensed run-through for the day or two before the exam. You already understand stoichiometry, the goal here is making sure nothing on this list has quietly gone soft. Read it end to end once, then use it as a checklist against your own working on a few practice questions.
The full syllabus scope, in one place
Cambridge IGCSE Chemistry 0620 (Extended tier) examines the following under stoichiometry:
- Stating formulae of elements and compounds, and constructing word and symbol equations with state symbols
- Deducing formulae of ionic compounds from charges, and constructing ionic equations
- Relative atomic mass (Ar) and relative formula mass (Mr)
- Calculating reacting masses in simple proportions
- The mole as a unit of amount of substance, and the Avogadro constant (6.02 × 10²³)
- moles = mass ÷ molar mass, and using it to find mass, molar mass, or number of particles
- The molar gas volume: 24 dm³ at r.t.p.
- Stoichiometric calculations involving reacting masses, limiting reactants, gas volumes, and solution concentrations (g/dm³ and mol/dm³)
- Titration calculations
- Empirical and molecular formula from experimental data
- Percentage yield, percentage composition, and percentage purity
If any item on this list feels unfamiliar rather than just “a bit rusty,” that’s worth flagging now, not discovering mid-exam.
Every formula in one table
| Find this | Formula | Watch for |
|---|---|---|
| Relative formula mass, Mr | Sum of (Ar × number of each atom) | Use Ar, not atomic number |
| Moles from mass | moles = mass (g) ÷ Mr | Mass always in grams |
| Mass from moles | mass = moles × Mr | |
| Moles from gas volume | moles = volume (dm³) ÷ 24 | r.t.p. only; convert cm³ → dm³ by ÷1000 |
| Gas volume from moles | volume (dm³) = moles × 24 | Convert to cm³ by ×1000 if needed |
| Moles from concentration | moles = concentration (mol/dm³) × volume (dm³) | Convert cm³ → dm³ by ÷1000 |
| Concentration from moles | concentration = moles ÷ volume (dm³) | |
| Mole ratio between substances | Read from the balanced equation’s coefficients | Never assume 1:1 |
| Percentage yield | (actual yield ÷ theoretical yield) × 100 | Theoretical yield needs a full calculation |
| Percentage composition/purity | (mass of component ÷ total mass) × 100 | |
| Empirical formula ratio | moles of each element ÷ smallest moles value | Never round; multiply to clear fractions |
| Number of particles | moles × 6.02 × 10²³ | Avogadro constant |
Command words to recognise on sight
- Calculate: a numerical process is required, shown clearly, not just a final number.
- Determine: often an unstructured, multi-step problem; you have to plan the route yourself.
- State: precise wording, no working needed, but exact phrasing matters (“mol” is accepted, “moles” as a plural is not, for example).
- Show that: the answer is given to you; marks come from the method, not from confirming the number works. Full working is non-negotiable here.
- Deduce: conclude from the information given, common in empirical formula and ionic equation questions.
The five checks to run before submitting any stoichiometry answer
- 1. Did you use Ar (the larger periodic table number), not the atomic number?
- 2. Did you convert every volume to dm³ before substituting into a formula?
- 3. Did you read the mole ratio off the balanced equation, rather than assuming 1:1?
- 4. If a mole ratio wasn’t a whole number, did you multiply to clear the fraction, rather than round?
- 5. Is your working visible, and does your final answer include the correct unit?
Running through these five checks on a few past questions tonight is a better use of time than doing ten more fresh questions. It targets exactly the places marks are lost, rather than practising what’s already solid.
One last thing worth remembering
Stoichiometry marks are disproportionately method marks. A wrong answer with clear, structured working often scores more than a right answer with none. If time is short, prioritise writing every step down over chasing speed. A slower, fully-shown answer beats a fast, unshown one almost every time this topic is assessed.
If any part of this list still feels shaky the night before, that’s still fixable. It’s exactly the kind of targeted, last-mile gap we help close in Nowa Link’s IGCSE chemistry coaching.
Continue your IGCSE stoichiometry revision
- 5 Stoichiometry Mistakes That Cost IGCSE Chemistry Students Marks
- IGCSE Moles and Stoichiometry Made Simple: The Complete Notes
- Empirical Formula Questions and Answers for IGCSE Chemistry
- IGCSE Stoichiometry Worksheet with Answers (Free Practice)
- How to Calculate Empirical Formula: IGCSE Chemistry Explained
- The Ultimate IGCSE Stoichiometry Formula Sheet
- The Mole Formula Explained: A Step-by-Step IGCSE Guide
- IGCSE Stoichiometry Past Paper Questions and Full Solutions
- 20 IGCSE Moles Questions to Test Your Understanding
- Mastering Mole Calculations for IGCSE Chemistry